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介绍CELLBLOKS:一种新型的芯片上器官平台,允许采用即插即用的方法构建器官型模型。

Introducing CELLBLOKS: a novel organ-on-a-chip platform allowing a plug-and-play approach towards building organotypic models.

作者信息

Llabjani Valon, Siddique M R, Macos Anaïs, Abouzid Afaf, Hoti Valmira, Martin Francis L, Patel Imran I, Raza Ahtasham

机构信息

REVIVOCELL Limited, Sci-Tech Daresbury, Keckwick Lane, Daresbury, Warrington, WA4 4AD UK.

出版信息

In Vitro Model. 2022 Jul 4;1(6):423-435. doi: 10.1007/s44164-022-00027-8. eCollection 2022 Dec.

Abstract

UNLABELLED

Human organs are structurally and functionally complex systems. Their function is driven by the interactions between many specialised cell types, which is difficult to unravel on a standard Petri dish format. Conventional "Petri dish" approaches to culturing cells are static and self-limiting. However, current organ-on-a-chip technologies are difficult to use, have a limited throughput and lack compatibility with standard workflow conditions. We developed CELLBLOKS as a novel "plug-and-play" organ-on-a-chip platform that enables straightforward creation of multiple cell-type organ-specific microenvironments. Herein, we demonstrate its advantages by building a liver model representative of live tissue function. CELLBLOKS allows one to systematically test and identify various cell combinations that replicate optimal hepatic relevance. The combined interactions of fibroblasts, endothelial cells and hepatocytes were analysed using hepatic biochemistry (CYP3A4 and urea), cellular proliferation indices and transporter activities (albumin). The results demonstrate that optimal liver function can be achieved by exploiting crosstalk in co-culture combinations compared to conventional mono-culture. The optimised CELLBLOKS liver model was tested to analyse drug-induced liver toxicity using tamoxifen. The data suggests that our CELLBLOKS liver model is highly sensitive to toxic insult compared to mono-culture liver models. In summary, CELLBLOKS provides a novel cell culture technology for creating human-relevant organotypic models that are easy and straightforward to establish in laboratory settings.

SUPPLEMENTARY INFORMATION

The online version contains supplementary material available at 10.1007/s44164-022-00027-8.

摘要

未标注

人体器官是结构和功能复杂的系统。其功能由多种特殊细胞类型之间的相互作用驱动,这在标准培养皿形式下难以阐明。传统的细胞培养“培养皿”方法是静态且自我限制的。然而,当前的芯片器官技术使用困难、通量有限且与标准工作流程条件不兼容。我们开发了CELLBLOKS作为一种新型的“即插即用”芯片器官平台,能够直接创建多种细胞类型的器官特异性微环境。在此,我们通过构建一个代表活组织功能的肝脏模型来展示其优势。CELLBLOKS允许人们系统地测试和识别各种能复制最佳肝脏相关性的细胞组合。使用肝脏生化指标(CYP3A4和尿素)、细胞增殖指数和转运活性(白蛋白)分析成纤维细胞、内皮细胞和肝细胞的联合相互作用。结果表明,与传统单培养相比,通过利用共培养组合中的细胞间相互作用可实现最佳肝功能。使用他莫昔芬对优化后的CELLBLOKS肝脏模型进行测试以分析药物诱导的肝毒性。数据表明,与单培养肝脏模型相比,我们的CELLBLOKS肝脏模型对毒性损伤高度敏感。总之,CELLBLOKS提供了一种新型细胞培养技术,用于创建与人类相关的器官型模型,在实验室环境中易于建立。

补充信息

在线版本包含可在10.1007/s44164-022-00027-8获取的补充材料。

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